In the published version of the paper, Fig. 15(b-3) was incorrectly reproduced. The correct graph is shown below.
Reynolds number effect on wall turbulence: toward effective feedback control
β Scribed by Kaoru Iwamoto; Yuji Suzuki; Nobuhide Kasagi
- Publisher
- Elsevier Science
- Year
- 2002
- Tongue
- English
- Weight
- 619 KB
- Volume
- 23
- Category
- Article
- ISSN
- 0142-727X
No coin nor oath required. For personal study only.
β¦ Synopsis
Direct numerical simulation of turbulent channel flow at Re s ΒΌ 110-650 is made in order to assess the feedback control algorithms which have been proposed for reducing skin friction. The effectiveness of the existing control schemes is decreased with increasing the Reynolds number from Re s ΒΌ 110 to 300. It is found, through the Karhunen-Loeve (KL) decomposition of turbulent fluctuations, that the KL modes at 15 < y ΓΎ < 30, which correspond to longitudinal vortices and near-wall streaky structures, play a dominant role in the production of turbulence and wall shear stress at Re s ΒΌ 110. At Re s ΒΌ 300, however, the KL modes at 30 < y ΓΎ < 75 also make appreciable contribution to the wall shear stress generation. The regeneration mechanism of the near-wall vortices is related to the nonlinear interaction between the KL modes at 15 < y ΓΎ < 30 and those at 30 < y ΓΎ < 75.
π SIMILAR VOLUMES
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